The glycocalyx affects the mechanotransductive perception of the topographical microenvironment

J Nanobiotechnology. 2022 Sep 19;20(1):418. doi: 10.1186/s12951-022-01585-5.

Abstract

The cell/microenvironment interface is the starting point of integrin-mediated mechanotransduction, but many details of mechanotransductive signal integration remain elusive due to the complexity of the involved (extra)cellular structures, such as the glycocalyx. We used nano-bio-interfaces reproducing the complex nanotopographical features of the extracellular matrix to analyse the glycocalyx impact on PC12 cell mechanosensing at the nanoscale (e.g., by force spectroscopy with functionalised probes). Our data demonstrates that the glycocalyx configuration affects spatio-temporal nanotopography-sensitive mechanotransductive events at the cell/microenvironment interface. Opposing effects of major glycocalyx removal were observed, when comparing flat and specific nanotopographical conditions. The excessive retrograde actin flow speed and force loading are strongly reduced on certain nanotopographies upon strong reduction of the native glycocalyx, while on the flat substrate we observe the opposite trend. Our results highlight the importance of the glycocalyx configuration in a molecular clutch force loading-dependent cellular mechanism for mechanosensing of microenvironmental nanotopographical features.

Keywords: Adhesion force spectroscopy; Atomic force microscopy; Colloidal probes; Focal adhesion; Force loading; Glycocalyx; Integrin adhesion complexes; Mechanotransduction; Molecular clutch; Nanostructured cell microenvironment; Nanotopography.

MeSH terms

  • Actins
  • Glycocalyx* / physiology
  • Integrins
  • Mechanotransduction, Cellular*
  • Perception

Substances

  • Actins
  • Integrins